首页> 外文会议>Conference on optical methods for inspection, characterization, and imaging of biomaterials II >Extended Field of View Space-Time Digital Holograms for Lab-on-a-Chip microfluidic imaging
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Extended Field of View Space-Time Digital Holograms for Lab-on-a-Chip microfluidic imaging

机译:用于实验室空间数字全息图的扩展领域用于实验室微流体成像

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We propose a new recording modality, named here Space-Time Scanning Interferometry (STSI), which allows to capture interferograms using a linear array detector instead of a common 2D sensor. Object scanning is exploited to perform a different mapping of the holograms in the space-time domain. Three sensor rows are sufficient to yield the whole complex object field from a time sequence of interferograms. This approach is particularly useful in microfluidic microscopy, where the sample motion is intrinsically provided. We then introduce the Space-Time Digital Hologram (STDH), still possessing all the capabilities of a common DH, namely quantitative phase-contrast mapping of the samples and flexible refocusing starting from blind out-of focus recordings, but obtainable using a compact single line detector easily embeddable onboard a Lab-on-a-Chip platform. Above all, the proposed optofluidic approach is able to provide STDHs with unlimited FoV along the flow direction, independently of the set magnification factor and without the need for further processing such as hologram stitching. Hence, thanks to the possibility to refocus multiple flowing objects displaced in a liquid volume, STDH assures drastically enhanced throughput, quantitative and label-free, on-chip microscopy.
机译:我们提出了一种新的记录模态,这里命名为空时扫描干涉测量法(STSI),其允许使用线性阵列检测器而不是公共2D传感器捕获干扰图。利用对象扫描来执行空时域中全息图的不同映射。三个传感器行足以从干涉图的时间顺序产生整个复杂的物体字段。该方法在微流体显微镜中特别有用,其中样品运动本质上提供。然后,我们介绍了时空数字全息图(STDH),仍然具有共同的DH的所有能力,即从盲目的焦点记录开始的样品的定量相位对比映射和灵活的重生,但可以使用紧凑的单个可获得线路探测器可轻松嵌入在芯片上平台上。最重要的是,所提出的optof流体方法能够沿着流动方向与无限制的FOV提供STDHS,独立于设定的放大因子,并且不需要进一步处理,例如全息图缝合。因此,由于重新聚焦多次流动物体在液体体积中置换的可能性,STDH确保了众所周知的吞吐量,定量和无标记,片上显微镜显微镜。

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